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Updated: Jan 20, 2026

Bridging the Bio-Electronic Interface with Biofabrication
Published on: June 6, 2012
Thermal Cyclotrimerization Bridges Polymer-Filler Interfaces for High-Performance CO2 Separation Membranes
Zhihong Lin1,2, Kaifang Wang1,2, Ziyi Yuan1,2
1Department of Chemical Engineering, Guangdong Technion-Israel Institute of Technology, Shantou, Guangdong, China.
None:
Mixed-matrix membranes (MMMs) that combine polymers with porous fillers hold promise for scalable CO2 capture, but their performance is often limited by inadequate polymer-filler compatibility and suboptimal micropore structure. Here we demonstrate a thermal cyclotrimerization strategy that simultaneously tunes the microstructure of PIM-1 and improves continuity at the MOFpolymer interface. Using MAF-stu-1 as a model filler, the resulting thermally rearranged MMMs achieve CO2 permeabilities above 10 000 barrer with a 2.5-fold increase in CO2/N2 selectivity (from 18 to 46). Sorption measurements, spectroscopy, surface energy analysis, and molecular simulations reveal that cyclotrimerization introduces triazine units that both restrict polymer chain packing and create favorable interfacial interactions with MAF-stu-1, leading to enhanced pore accessibility and molecular discrimination. Importantly, these material-level improvements translate into stronger process performance, reducing the specific CO2 capture cost by 43.9% compared to the untreated membrane. This work establishes thermal cyclotrimerization as a versatile strategy for engineering robust MMMs, linking interfacial chemistry to process-level outcomes and advancing the development of practical membrane technologies for industrial carbon capture.
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